EP0644647B1 - An electrical power generating arrangement - Google Patents

An electrical power generating arrangement Download PDF

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Publication number
EP0644647B1
EP0644647B1 EP94305881A EP94305881A EP0644647B1 EP 0644647 B1 EP0644647 B1 EP 0644647B1 EP 94305881 A EP94305881 A EP 94305881A EP 94305881 A EP94305881 A EP 94305881A EP 0644647 B1 EP0644647 B1 EP 0644647B1
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EP
European Patent Office
Prior art keywords
electrical power
engine
frequency converter
generating arrangement
speed
Prior art date
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Expired - Lifetime
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EP94305881A
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German (de)
French (fr)
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EP0644647A1 (en
Inventor
Jeffrey Alan Sutton
Iain John Tebbutt
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Transco PLC
BG Transco PLC
BG Group Ltd
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BG PLC
British Gas PLC
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02PCONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
    • H02P9/00Arrangements for controlling electric generators for the purpose of obtaining a desired output
    • H02P9/04Control effected upon non-electric prime mover and dependent upon electric output value of the generator
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E20/00Combustion technologies with mitigation potential
    • Y02E20/14Combined heat and power generation [CHP]

Definitions

  • This invention concerns an electrical power generating arrangement from which the electrical power output is to be connected to the electrical mains.
  • the electrical power generating arrangement may be included in a combined heat and power system (CHP), though it need not necessarily be.
  • CHP combined heat and power system
  • the electrical generator feeding its output into the electrical mains or grid is rotated at substantially constant speed by a reciprocating internal combustion engine giving a substantially constant speed rotary output driving the generator. Since the engine rotates at a substantially constant number of revolutions per minute (r.p.m.) whatever the electrical power demand from the generator by an external circuit being supplied, the engine is not necessarily operating at optimum efficiency which optimum efficiency may occur at a lower r.p.m. than the aforesaid constant r.p.m. for low power demand or at a higher r.p.m. for higher power demand. Also best advantage cannot be taken of using high revving high performance engines produced for motor vehicles.
  • An object of the invention is to provide an electrical power generating arrangement from which the electrical power output is to be connected to the electrical mains or grid, in which the arrangement is capable of being used with the engine running at variable speed.
  • US-A 4,661,761 discloses an arrangement in which an internal combustion engine drives an electric generator supplying a frequency converter in order to obtain a constant frequency output.
  • an electrical power generating arrangement from which the electrical power output is to be connected to the electrical mains
  • said electrical power generating arrangement being characterised by a reciprocating internal combustion engine and an electrical power generator rotatably driven by rotary drive derived from said engine, frequency converter means for converting variable frequency AC derived from said generator to a substantially fixed frequency AC for delivery to said mains, control means, said control means being arranged to control the speed of said engine, and said control means being arranged to vary the engine speed as a function of variation of the electrical power to be delivered from said frequency converter means.
  • the engine can be run at varying speeds causing the generator to give variable frequency AC electrical power output which is converted by the frequency converter means to an AC electrical power output having substantially the predetermined constant frequency of the mains.
  • Fig. 1 shows an electrical power generating arrangement 2 in which an electrical power generator 4 is rotatably driven by rotary drive taken from a reciprocating internal combustion engine 6.
  • the generator 4 is driven at the same speed as the engine 6 with which the generator is fast (in known manner) in rotation.
  • the engine 6 is supplied with a controlled mixture of fuel and combustion air by any suitable fuel/air control means 8, for example a carburettor or fuel injection system (known per se); the aforesaid fuel/air control means 8 comprising a throttle 10, a supply path 12 for combustion air (for example, from atmosphere), and a supply path 14 for fuel.
  • the fuel may be liquid, for example petrol or diesel oil, or may be fuel gas, for example natural gas, provided in know manner via a pressure regulator from which the gas emerges at a desired predetermined pressure for supply to the fuel/air control means 8.
  • the generating arrangement 2 may be part of a combined heat and power system (CHP) wherein heat generated by the engine 6 is extracted by heat exchange means 15 for some useful heating purpose.
  • the heat exchange means 15 may extract heat from engine coolant, for example water, circulating in the engine cooling system and/or from hot exhaust gases from the engine.
  • the generator 4 gives three-phase AC power output supplied as input to a frequency converter 16.
  • the frequency converter 16 may be of any suitable kind (known per se) for example a cycloconverter or, as is preferably used in Fig. 1, a rectifier-inverter, and comprises means, for example phase-controlled silicon controlled rectifiers, to control electric power flow through the frequency converter 16.
  • the frequency converter 16 converts a variable frequency AC input into a substantially fixed frequency AC output corresponding to the frequency of the mains.
  • Generating arrangement 2 can be connected to supply electrical into the electrical grid or mains 18 to which a load 20 is connected to be powered either by the mains or wholly or in part by the generating arrangement 2.
  • the electrical circuit in which the load 20 is included also includes electrical power measuring or metering means 22 arranged to send a signal to controller 24 indicating the electrical power being demanded by the load 20.
  • Controller 24 comprises electronic apparatus comprising computer means.
  • the controller 24 is also arranged to receive signals (i) from electrical power measuring or metering means 26 indicating the electrical power output from the frequency converter 16, (ii) from rotary speed measuring means 28 indicating the rotational speed of the output drive from the engine 6, and (iii) from fuel measuring means 30 indicating the amount of fuel consumed in a given period of time.
  • the controller 24 processes the aforesaid signals and is arranged to give output control signals on signal paths 32 and 34.
  • the signals on path 32 actuate throttle operating means to vary the percentage the throttle 10 is open.
  • the signals on path 34 are regulating signals to regulate the frequency converter 16 to vary, as desired, the electrical power output from said frequency converter means.
  • Observing means 36 to observe the voltage and voltage phase of the mains voltage supplies signals representing its observations to the frequency converter 16 which is adapted to cause actuation of electrical contact means 38 so that the latter is closed when the electrical power output from the frequency converter has a desired voltage sufficient to ensure that said power output can enter the grid or mains 18 and the voltage output from the frequency converter is in phase with the grid or mains voltage.
  • the arrangement is run at various fixed engine speeds as exemplified in Figs. 2, 3 and 4 to obtain operating data.
  • Such data can be used to produce graphs or maps of the efficiency at which the engine 6 operates at different engine speeds to drive the generator 4 to produce varying amounts of electrical power from the frequency converter as exemplified by the graphs shown in Fig. 5. Looking at Fig. 5 it can be seen that if one wished to drive the generator 4 to produce 30Kw of electrical power from the frequency converter, then given the choice of running the engine 6 at 1100, 1300 or 1500 r.p.m., the most efficient or optimum speed at which to run the engine is 1100 r.p.m. at which the efficiency is substantially 24%, as compared with about 23% at 1300 r.p.m. and about 22% at 1500 r.p.m.
  • the controller 24 is programmed with an engine map or look-up tables, as exemplified by the graph in Fig. 6 representing the engine speed at which the engine can be run with optimum efficiency to drive the generator 4 to produce a desired electrical power output from the frequency converter. Accordingly the controller 24 is arranged to vary the speed of the engine 6 as a function of variation of the electrical power to be delivered from the frequency converter means 16.
  • the power measuring means 22 continuously provides information telling the controller 24 what electrical power is being demanded by the load 20 at any instant, whilst the power measuring means 26 continuously provides information telling the controller what the electrical power output from the generator 16 is. If there is a difference or error between the power demand and the frequency converter output, the controller 24 operates to vary the power outputs of the frequency converter 16 and the generator 4 to meet the demand. Should the power demand of the load 20 drop below the output of the frequency converter 16 (and hence the engine speed is to be decreased), the controller 24 (via the path 34) signals the frequency converter to reduce its power output to the new value being demanded. This reduction in power output causes a reduction in the electric current being demanded. Thus the generator 4 speeds up, which causes the engine 6 to similarly increase its speed.
  • the increase in speed of generator 4 and engine 6 is only for a short time. This is because the controller 24, on noting that the engine speed signals from the speed measuring means 28 indicate an engine speed greater than the present engine speed setpoint, sends a signal on the path 32 causing the throttle 10 to close, and the controller consults the engine map (Fig. 6 to determine a new decreased engine speed setpoint corresponding with the new power demand by the load 20. Closure of the throttle 10 causes the speed of the engine 6 and generator 4 to drop. When the engine speed drops to the new setpoint this is detected by the controller 24 observing the engine speed signals from the speed measuring means 28, and the controller causes the throttle 10 to open and then operates the throttle to maintain the engine speed at substantially the new setpoint.
  • the controller 24 consults the engine map to determine a new increased engine speed setpoint corresponding to the new increased electrical power load being demanded.
  • the controller 24 opens the throttle 10 to increase the engine speed, and when the engine speed reaches the new setpoint (as indicated to the controller by signals from the speed measuring means 28) the controller operates the throttle to maintain the engine speed at substantially the new speed setpoint.
  • the controller 24 then signals the frequency converter 16 to increase its electrical power output to that being demanded by the load 20. This causes the frequency converter 16 to draw increased current from the generator 4, and the controller 24 continues to operate the throttle 10 to maintain the engine speed at substantially the new setpoint.
  • the controller 24 operates the engine 6 at a predetermined substantially constant speed until the frequency converter 16 produces an AC power output at the desired necessary voltage and in phase with the mains supply, whereupon the frequency converter causes closure of the contact means 38.
  • the controller 24 may be adapted to compensate for engine ageing or variation of its operating characteristics. Using the observation of the fuel measuring means 32 and the measured power output from the frequency converter 16, the controller 24 can continuously calculate the instantaneous efficiency of the engine 6.
  • the controller 24 can be programmed to vary the throttle opening to vary the engine speed, preferably slightly, about the engine speed setpoint derived using the engine map such as shown in Fig. 6. In this way the optimum efficiency of the engine 6 can be determined and the engine run at that optimum.
  • the power generating arrangement 2 has a minimum power output from the frequency converter 16 which is less than the minimum demand by the load 20 and may have a maximum power output which matches or exceeds the likely maximum demand by the load. If the maximum demand is high a high performance high revving engine 6 may be used.
  • the system may be arranged so that the power output from the frequency converter 16 may be a predetermined fraction of the power demanded by the load, provided, for example, the load demand is above a predetermined minimum and below a predetermined maximum. Above the predetermined maximum load demand, any extra demand is met by the mains without the generator 4 making an extra power output contribution. Below the predetermined minimum load demand, all the load can be met by the output from generator 4 and frequency converter 16. In this system, because the generating arrangement 2 may only supply a predetermined portion of the total power demanded by the load above the predetermined minimum there is no need to run the engine 6 at high speed or full power for long periods. That predetermined portion or fraction may vary according to variation in the size of the power demand by the load.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Control Of Eletrric Generators (AREA)
  • Supply And Distribution Of Alternating Current (AREA)
  • Control Of Vehicle Engines Or Engines For Specific Uses (AREA)

Description

  • This invention concerns an electrical power generating arrangement from which the electrical power output is to be connected to the electrical mains.
  • The electrical power generating arrangement may be included in a combined heat and power system (CHP), though it need not necessarily be.
  • In some known CHP systems the electrical generator feeding its output into the electrical mains or grid is rotated at substantially constant speed by a reciprocating internal combustion engine giving a substantially constant speed rotary output driving the generator. Since the engine rotates at a substantially constant number of revolutions per minute (r.p.m.) whatever the electrical power demand from the generator by an external circuit being supplied, the engine is not necessarily operating at optimum efficiency which optimum efficiency may occur at a lower r.p.m. than the aforesaid constant r.p.m. for low power demand or at a higher r.p.m. for higher power demand. Also best advantage cannot be taken of using high revving high performance engines produced for motor vehicles.
  • An object of the invention is to provide an electrical power generating arrangement from which the electrical power output is to be connected to the electrical mains or grid, in which the arrangement is capable of being used with the engine running at variable speed.
  • US-A 4,661,761 discloses an arrangement in which an internal combustion engine drives an electric generator supplying a frequency converter in order to obtain a constant frequency output.
  • According to the invention there is provided an electrical power generating arrangement from which the electrical power output is to be connected to the electrical mains,
       said electrical power generating arrangement being characterised by a reciprocating internal combustion engine and an electrical power generator rotatably driven by rotary drive derived from said engine, frequency converter means for converting variable frequency AC derived from said generator to a substantially fixed frequency AC for delivery to said mains, control means, said control means being arranged to control the speed of said engine, and said control means being arranged to vary the engine speed as a function of variation of the electrical power to be delivered from said frequency converter means.
  • The engine can be run at varying speeds causing the generator to give variable frequency AC electrical power output which is converted by the frequency converter means to an AC electrical power output having substantially the predetermined constant frequency of the mains.
  • The invention will now be further described, by way of example, with reference to the accompanying drawings in which:-
    • Fig. 1 is a diagrammatic representation of an electrical power generating arrangement formed according to the invention;
    • Figs. 2, 3 and 4 show examples of graphs representing variation of engine efficiency plotted against variation of percentage throttle opening for an internal combustion engine of the kind used in the arrangement in Fig. 1 running at 1100 r.p.m., 1300 r.p.m. and 1500 r.p.m. respectively, or show examples of graphs representing variation of electrical power output in kilowatts from frequency converter means of the kind used in the arrangement in Fig. 1 plotted against variation of the percentage throttle opening for the said engine running at 1100, 1300 and 1500 r.p.m. respectively;
    • Fig. 5 shows a set of graphs of variation in the engine efficiency plotted against variation in the electrical power output from the frequency converter means (derived from data used to produce Figs. 2 to 4) when the engine is running at 1100, 1300, and 1500 r.p.m. respectively, and
    • Fig. 6 shows a graph (derived from data used to produce the graphs in Figs. 2 and 5) of variation in the engine speed in r.p.m. plotted against variation in electrical power required from the frequency converter means (i.e. the electrical power required from the frequency converter means to meet the electrical load demand), the graph indicating the engine speed at which the engine is operating at substantially optimum efficiency to drive the generator (when the frequency converter means is providing the required electrical power output).
  • Fig. 1 shows an electrical power generating arrangement 2 in which an electrical power generator 4 is rotatably driven by rotary drive taken from a reciprocating internal combustion engine 6. The generator 4 is driven at the same speed as the engine 6 with which the generator is fast (in known manner) in rotation.
  • The engine 6 is supplied with a controlled mixture of fuel and combustion air by any suitable fuel/air control means 8, for example a carburettor or fuel injection system (known per se); the aforesaid fuel/air control means 8 comprising a throttle 10, a supply path 12 for combustion air (for example, from atmosphere), and a supply path 14 for fuel. The fuel may be liquid, for example petrol or diesel oil, or may be fuel gas, for example natural gas, provided in know manner via a pressure regulator from which the gas emerges at a desired predetermined pressure for supply to the fuel/air control means 8.
  • The generating arrangement 2 may be part of a combined heat and power system (CHP) wherein heat generated by the engine 6 is extracted by heat exchange means 15 for some useful heating purpose. For example the heat exchange means 15 may extract heat from engine coolant, for example water, circulating in the engine cooling system and/or from hot exhaust gases from the engine.
  • The generator 4 gives three-phase AC power output supplied as input to a frequency converter 16. The frequency converter 16 may be of any suitable kind (known per se) for example a cycloconverter or, as is preferably used in Fig. 1, a rectifier-inverter, and comprises means, for example phase-controlled silicon controlled rectifiers, to control electric power flow through the frequency converter 16. The frequency converter 16 converts a variable frequency AC input into a substantially fixed frequency AC output corresponding to the frequency of the mains.
  • Generating arrangement 2 can be connected to supply electrical into the electrical grid or mains 18 to which a load 20 is connected to be powered either by the mains or wholly or in part by the generating arrangement 2. The electrical circuit in which the load 20 is included also includes electrical power measuring or metering means 22 arranged to send a signal to controller 24 indicating the electrical power being demanded by the load 20.
  • Controller 24 comprises electronic apparatus comprising computer means. The controller 24 is also arranged to receive signals (i) from electrical power measuring or metering means 26 indicating the electrical power output from the frequency converter 16, (ii) from rotary speed measuring means 28 indicating the rotational speed of the output drive from the engine 6, and (iii) from fuel measuring means 30 indicating the amount of fuel consumed in a given period of time. The controller 24 processes the aforesaid signals and is arranged to give output control signals on signal paths 32 and 34. The signals on path 32 actuate throttle operating means to vary the percentage the throttle 10 is open. The signals on path 34 are regulating signals to regulate the frequency converter 16 to vary, as desired, the electrical power output from said frequency converter means.
  • Observing means 36 to observe the voltage and voltage phase of the mains voltage supplies signals representing its observations to the frequency converter 16 which is adapted to cause actuation of electrical contact means 38 so that the latter is closed when the electrical power output from the frequency converter has a desired voltage sufficient to ensure that said power output can enter the grid or mains 18 and the voltage output from the frequency converter is in phase with the grid or mains voltage.
  • At the time of manufacture of the generating arrangement 2 or on site at, for example, the time that the generating arrangement 2 is being installed or at some other desired time, the arrangement is run at various fixed engine speeds as exemplified in Figs. 2, 3 and 4 to obtain operating data. For example, the data can include the electrical power output from the generator 4 measured at different percentage openings of the throttle 10 and, at the same time, at those throttle openings the efficiency of the engine 8 is calculated using the expression:- Efficiency = Shaft Power Output From Engine 6 Fuel Power Input To Engine 6 x 100
    Figure imgb0001
  • Such data can be used to produce graphs or maps of the efficiency at which the engine 6 operates at different engine speeds to drive the generator 4 to produce varying amounts of electrical power from the frequency converter as exemplified by the graphs shown in Fig. 5. Looking at Fig. 5 it can be seen that if one wished to drive the generator 4 to produce 30Kw of electrical power from the frequency converter, then given the choice of running the engine 6 at 1100, 1300 or 1500 r.p.m., the most efficient or optimum speed at which to run the engine is 1100 r.p.m. at which the efficiency is substantially 24%, as compared with about 23% at 1300 r.p.m. and about 22% at 1500 r.p.m.
  • Using the aforesaid data the controller 24 is programmed with an engine map or look-up tables, as exemplified by the graph in Fig. 6 representing the engine speed at which the engine can be run with optimum efficiency to drive the generator 4 to produce a desired electrical power output from the frequency converter. Accordingly the controller 24 is arranged to vary the speed of the engine 6 as a function of variation of the electrical power to be delivered from the frequency converter means 16.
  • The power measuring means 22 continuously provides information telling the controller 24 what electrical power is being demanded by the load 20 at any instant, whilst the power measuring means 26 continuously provides information telling the controller what the electrical power output from the generator 16 is. If there is a difference or error between the power demand and the frequency converter output, the controller 24 operates to vary the power outputs of the frequency converter 16 and the generator 4 to meet the demand. Should the power demand of the load 20 drop below the output of the frequency converter 16 (and hence the engine speed is to be decreased), the controller 24 (via the path 34) signals the frequency converter to reduce its power output to the new value being demanded. This reduction in power output causes a reduction in the electric current being demanded. Thus the generator 4 speeds up, which causes the engine 6 to similarly increase its speed. The increase in speed of generator 4 and engine 6 is only for a short time. This is because the controller 24, on noting that the engine speed signals from the speed measuring means 28 indicate an engine speed greater than the present engine speed setpoint, sends a signal on the path 32 causing the throttle 10 to close, and the controller consults the engine map (Fig. 6 to determine a new decreased engine speed setpoint corresponding with the new power demand by the load 20. Closure of the throttle 10 causes the speed of the engine 6 and generator 4 to drop. When the engine speed drops to the new setpoint this is detected by the controller 24 observing the engine speed signals from the speed measuring means 28, and the controller causes the throttle 10 to open and then operates the throttle to maintain the engine speed at substantially the new setpoint.
  • If there is an increase in the electrical power being demanded by the load 20 (and hence the engine speed is to be increased) an error between the load power demand and the power output from the frequency converter 16 occurs. The controller 24 consults the engine map to determine a new increased engine speed setpoint corresponding to the new increased electrical power load being demanded. The controller 24 opens the throttle 10 to increase the engine speed, and when the engine speed reaches the new setpoint (as indicated to the controller by signals from the speed measuring means 28) the controller operates the throttle to maintain the engine speed at substantially the new speed setpoint. The controller 24 then signals the frequency converter 16 to increase its electrical power output to that being demanded by the load 20. This causes the frequency converter 16 to draw increased current from the generator 4, and the controller 24 continues to operate the throttle 10 to maintain the engine speed at substantially the new setpoint.
  • At start-up, when the contact means 38 is interrupted, the controller 24 operates the engine 6 at a predetermined substantially constant speed until the frequency converter 16 produces an AC power output at the desired necessary voltage and in phase with the mains supply, whereupon the frequency converter causes closure of the contact means 38.
  • If desired, the controller 24 may be adapted to compensate for engine ageing or variation of its operating characteristics. Using the observation of the fuel measuring means 32 and the measured power output from the frequency converter 16, the controller 24 can continuously calculate the instantaneous efficiency of the engine 6. The controller 24 can be programmed to vary the throttle opening to vary the engine speed, preferably slightly, about the engine speed setpoint derived using the engine map such as shown in Fig. 6. In this way the optimum efficiency of the engine 6 can be determined and the engine run at that optimum.
  • Preferably the power generating arrangement 2 has a minimum power output from the frequency converter 16 which is less than the minimum demand by the load 20 and may have a maximum power output which matches or exceeds the likely maximum demand by the load. If the maximum demand is high a high performance high revving engine 6 may be used.
  • Or, alternatively, the system may be arranged so that the power output from the frequency converter 16 may be a predetermined fraction of the power demanded by the load, provided, for example, the load demand is above a predetermined minimum and below a predetermined maximum. Above the predetermined maximum load demand, any extra demand is met by the mains without the generator 4 making an extra power output contribution. Below the predetermined minimum load demand, all the load can be met by the output from generator 4 and frequency converter 16. In this system, because the generating arrangement 2 may only supply a predetermined portion of the total power demanded by the load above the predetermined minimum there is no need to run the engine 6 at high speed or full power for long periods. That predetermined portion or fraction may vary according to variation in the size of the power demand by the load.

Claims (14)

  1. An electrical power generating arrangement (2) from which the electrical power output is to be connected to the electrical mains (18),
       said electric power generating arrangement (2) being characterised by a reciprocating internal combustion engine (6) and an electrical power generator (4) rotatably driven by rotary drive derived from said engine, frequency converter means (16) for converting variable frequency AC derived from said generator (4) to a substantially fixed frequency AC for delivery to said mains (18), control means (24), said control means (24) being arranged to control the speed of said engine (6), and said control means (24) being arranged to vary the engine speed as a function of variation of the electrical power output to be delivered from said frequency converter means (16).
  2. An electrical power generating arrangement (2) as claimed in Claim 1, characterised in that said control means (24) is arranged to operate in accordance with an engine map representing variation of the engine speed as a function of variation of said electrical power output from the frequency converter means (16).
  3. An electrical power generating arrangement (2) as claimed in Claim 2, characterised in that said engine map is derived from data to provide a particular said engine speed corresponding to a particular said electrical power output from the frequency converter means (16), and said particular engine speed being the speed at which the engine (6) is operating at substantially optimum efficiency for the arrangement (2) to produce said particular output from the frequency converter means (16) having regard to the scope of said data.
  4. An electrical power generating arrangement (2) as claimed in Claim 2, characterised in that said engine map comprises a range of engine speeds and a range of electrical power outputs from the frequency converter means (16), and for each speed in said range of speeds there corresponds a different respective power output in the said range of outputs, and the speed corresponding to a particular power output in said range of outputs is the speed at which the engine (6) is operating with optimum efficiency, compared to operating at other speeds in said range of speeds, when the power output from said frequency converter means (16) is to be said particular power output.
  5. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that the frequency converter means (16) is responsive to signals from said control means (24) to vary the electrical power output from the frequency converter means (16).
  6. An electrical power generating arrangement (2) as claimed in Claim 5, characterised in that the control means (24) is arranged to receive signals indicating the electrical power demand by an external load (20) and issue a signal to vary the electrical power output from said frequency converter means (16) to substantially equal the power demand by said load (20).
  7. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that the control means (24) is arranged to control opening and closing of throttle means (10) regulating supply of fuel to said engine (6).
  8. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that means (28) is provided to produce a signal transmitted to the control means (24) to indicate the speed of said engine (6).
  9. An electrical power generating arrangement (2) as claimed in Claim 2 and Claim 7, characterised in that means (30, 26) are provided to -observe fuel consumption by said engine (6) and electric power output from the frequency converter means (16), and using data derived from said observations said control means (24) can calculate the efficiency of the engine (6) and cause variation of the opening of said throttle means (10) to vary the engine speed about an engine speed setpoint derived from said map.
  10. An electrical power generating arrangement (2) as claimed in any one of Claim 2 to 4, or in Claim 9, or in any one of Claims 5 to 8 when appended to Claim 2, characterised in that the control means (24) comprises computer means programmed with said engine map.
  11. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that the frequency converter means (16) comprises a rectifier - inverter.
  12. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that the engine fuel is fuel gas.
  13. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that said control means (24) is arranged to cause the speed of the engine (6) to increase when an increase in the electrical power output from said frequency converter means (16) is required.
  14. An electrical power generating arrangement (2) as claimed in any one preceding claim, characterised in that said control means (24) is arranged to cause the speed of the engine (6) to decrease when a decrease in the electrical power output from said frequency converter means (24) is required.
EP94305881A 1993-09-17 1994-08-09 An electrical power generating arrangement Expired - Lifetime EP0644647B1 (en)

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GB939319323A GB9319323D0 (en) 1993-09-17 1993-09-17 An electrical power generating arrangement
GB9319323 1993-09-17

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EP0644647A1 EP0644647A1 (en) 1995-03-22
EP0644647B1 true EP0644647B1 (en) 1997-03-05

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US (1) US5552640A (en)
EP (1) EP0644647B1 (en)
DE (1) DE69401885T2 (en)
ES (1) ES2098868T3 (en)
GB (2) GB9319323D0 (en)

Families Citing this family (43)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2718902B1 (en) * 1994-04-13 1996-05-24 Europ Gas Turbines Sa Turbine-generator assembly without reducer.
GB9510086D0 (en) * 1995-05-18 1995-07-12 British Gas Plc Internal combustion engine
US6198238B1 (en) * 1995-12-07 2001-03-06 Borealis Technical Limited High phase order cycloconverting generator and drive means
US5864770A (en) * 1996-03-14 1999-01-26 Ziph; Benjamin Speed and power control of an engine by modulation of the load torque
US5751069A (en) * 1996-07-01 1998-05-12 General Motors Corporation Heat engine generator control system
US6570361B1 (en) 1999-02-22 2003-05-27 Borealis Technical Limited Rotating induction apparatus
US5777459A (en) * 1996-11-18 1998-07-07 Sundstrand Corporation Induction electrical power generating system with variable numbers of poles and excitation frequency
US5949146A (en) * 1997-07-02 1999-09-07 Cummins Engine Company, Inc. Control technique for a lean burning engine system
NL1010800C2 (en) * 1998-12-14 2000-06-19 Lagerwey Windturbine B V Method and device for converting a fluid flow of varying strength into electric energy.
US6864661B2 (en) * 1999-02-22 2005-03-08 Borealis Technical Limited Rotating induction apparatus
US6922037B2 (en) * 1999-02-22 2005-07-26 Borealis Technical Limited Rotating induction apparatus
US6825575B1 (en) * 1999-09-28 2004-11-30 Borealis Technical Limited Electronically controlled engine generator set
US7905813B2 (en) * 1999-09-28 2011-03-15 Borealis Technical Limited Electronically controlled engine generator set
WO2001061838A1 (en) * 2000-02-17 2001-08-23 Powerline Ges Pty Ltd An energy generating and supply system
US6380639B1 (en) * 2000-05-11 2002-04-30 Bombardier Inc. System, method and apparatus for power regulation
IL136379A0 (en) * 2000-05-25 2001-06-14 Gene Bio Applic Ltd Processing chamber
GB2406920B (en) * 2001-02-22 2005-09-21 Cummins Engine Co Inc Regulating speed of an internal combustion engine
GB2375834B (en) * 2001-02-22 2005-06-15 Cummins Engine Co Inc Regulating speed of an internal combustion engine
AUPR418901A0 (en) 2001-04-04 2001-05-03 Applidyne Pty Ltd Control system for cogeneration unit
KR100440390B1 (en) * 2001-12-26 2004-07-14 한국전기연구원 Isolated Power Supply Using Compressed Air
US8061139B2 (en) * 2002-05-22 2011-11-22 Ormat Technologies, Inc. Integrated engine generator rankine cycle power system
US7481200B2 (en) * 2002-07-12 2009-01-27 Cummins Engine Company, Inc. Start-up control of internal combustion engines
US6879053B1 (en) * 2002-10-22 2005-04-12 Youtility, Inc. Transformerless, load adaptive speed controller
EP1559179A4 (en) * 2002-10-22 2006-07-12 Youtility Inc Hybrid variable speed generator/uninterruptible power supply power converter
GB0302235D0 (en) * 2003-01-31 2003-03-05 Holset Engineering Co Electric motor assisted turbocharger
DE102006014678A1 (en) * 2006-03-28 2007-10-04 Endress & Hauser Meßtechnik GmbH & Co. KG Thermal and/or electrical power generation system`s efficiency determining method, involves measuring amount of raw material and thermal and/or electrical power, and calculating efficiency of system from measured material and power amount
US7635922B2 (en) * 2006-04-03 2009-12-22 C.E. Niehoff & Co. Power control system and method
US20070256428A1 (en) * 2006-05-05 2007-11-08 Sunpower, Inc. Vibration control of free piston machines through frequency adjustment
US7710081B2 (en) 2006-10-27 2010-05-04 Direct Drive Systems, Inc. Electromechanical energy conversion systems
US8374766B2 (en) * 2007-11-29 2013-02-12 Caterpillar Paving Products Inc. Power management system for compaction vehicles and method
DE112009000663B4 (en) * 2008-03-25 2022-11-03 General Electric Technology Gmbh PROCEDURE FOR OPERATING A POWER PLANT
US20090261599A1 (en) * 2008-04-21 2009-10-22 Glacier Bay, Inc. Power generation system
US8253298B2 (en) 2008-07-28 2012-08-28 Direct Drive Systems, Inc. Slot configuration of an electric machine
US7973424B2 (en) * 2009-04-03 2011-07-05 General Electric Company Method and apparatus for producing tractive effort with interface to other apparatus
US8178997B2 (en) 2009-06-15 2012-05-15 Google Inc. Supplying grid ancillary services using controllable loads
US9388753B2 (en) * 2009-09-17 2016-07-12 General Electric Company Generator control having power grid communications
US8812164B2 (en) * 2010-10-12 2014-08-19 Engineered Electric Company Portable cogeneration system incorporating renewable energy sources
US9009500B1 (en) 2012-01-18 2015-04-14 Google Inc. Method of correlating power in a data center by fitting a function to a plurality of pairs of actual power draw values and estimated power draw values determined from monitored CPU utilization of a statistical sample of computers in the data center
US20150357952A1 (en) * 2014-06-04 2015-12-10 Innovus Power, Inc. Method and system of tracking the maximum efficiency of a variable speed engine-generator set
GB2544457A (en) * 2015-09-24 2017-05-24 Cummins Power Generation Ltd Feed-forward control system and method for genset quick cold start
US9997977B1 (en) 2016-02-22 2018-06-12 MWE Investments LLC Dual engine generator
WO2018011621A1 (en) * 2016-07-15 2018-01-18 Barghest Building Performance Pte. Ltd. Method for improving operational efficiency of a cooling system through retrofitting a building with a master controller
US11569753B1 (en) 2021-10-20 2023-01-31 Honeywell Limited Apparatuses and methods for an alternating current to direct current converter

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4322630A (en) * 1980-03-17 1982-03-30 Gould Inc. Electrical power generating system
US4307690A (en) * 1980-06-05 1981-12-29 Rockwell International Corporation Electronic, variable speed engine governor
US4492874A (en) * 1982-04-26 1985-01-08 General Electric Company Synchronization fuel control for gas turbine-driven AC generator by use of maximum and minimum fuel signals
US4625160A (en) * 1984-12-17 1986-11-25 Sundstrand Corporation Variable speed constant frequency generating system
US4661761A (en) * 1985-02-11 1987-04-28 Kokusan Denki Co., Ltd. Internal combustion engine electrical system
JPS61221599A (en) * 1985-03-25 1986-10-01 Hitachi Ltd Engine drive ac generator
EP0268160A1 (en) * 1986-11-17 1988-05-25 GebràœDer Sulzer Aktiengesellschaft Method and device to reduce at least one frequence portion of a periodic pulsation
JPH0681555B2 (en) * 1987-01-19 1994-10-12 株式会社日立製作所 Variable speed generator and method
IL81437A (en) * 1987-01-30 1990-09-17 Amin Engineers Ltd Electronic controller and a system and method for optimizing generation of electrical power utilizing the same
US5006781A (en) * 1988-05-09 1991-04-09 Onan Corporation Microprocessor based integrated generator set controller apparatus and method
GB9225949D0 (en) * 1992-12-11 1993-02-03 British Gas Plc Combined heat and power apparatus

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GB9416872D0 (en) 1994-10-12
US5552640A (en) 1996-09-03
GB2281985A (en) 1995-03-22
EP0644647A1 (en) 1995-03-22
ES2098868T3 (en) 1997-05-01
GB9319323D0 (en) 1993-11-03
DE69401885D1 (en) 1997-04-10
DE69401885T2 (en) 1997-07-31

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